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Published on: August 8, 2019
Concurrent Respiratory Motion Correction of Abdominal PET and Dynamic Contrast-Enhanced-MRI Using a Compressed
Niccolo Fuin1, Onofrio A Catalano1, Michele Scipioni1,2
1Athinoula A. Martinos Center for Biomedical Imaging, Department of Radiology, Massachusetts General Hospital and Harvard Medical School, Charlestown, Massachusetts.
Abstract:
We present an approach for concurrent reconstruction of respiratory motion-compensated abdominal dynamic contrast-enhanced (DCE)-MRI and PET data in an integrated PET/MR scanner. The MR and PET reconstructions share the same motion vector fields derived from radial MR data; the approach is robust to changes in respiratory pattern and does not increase the total acquisition time. Methods: PET and DCE-MRI data of 12 oncologic patients were simultaneously acquired for 6 min on an integrated PET/MR system after administration of 18F-FDG and gadoterate meglumine. Golden-angle radial MR data were continuously acquired simultaneously with PET data and sorted into multiple motion phases on the basis of a respiratory signal derived directly from the radial MR data. The resulting multidimensional dataset was reconstructed using a compressed sensing approach that exploits sparsity among respiratory phases. Motion vector fields obtained using the full 6-min (MC6-min) and only the last 1 min (MC1-min) of data were incorporated into the PET reconstruction to obtain motion-corrected PET images and in an MR iterative reconstruction algorithm to produce a series of motion-corrected DCE-MR images (moco_GRASP). The motion-correction methods (MC6-min and MC1-min) were evaluated by qualitative analysis of the MR images and quantitative analysis of SUVmax and SUVmean, contrast, signal-to-noise ratio (SNR), and lesion volume in the PET images. Results: Motion-corrected MC6-min PET images demonstrated 30%, 23%, 34%, and 18% increases in average SUVmax, SUVmean, contrast, and SNR and an average 40% reduction in lesion volume with respect to the non-motion-corrected PET images. The changes in these figures of merit were smaller but still substantial for the MC1-min protocol: 19%, 10%, 15%, and 9% increases in average SUVmax, SUVmean, contrast, and SNR; and a 28% reduction in lesion volume. Moco_GRASP images were deemed of acceptable or better diagnostic image quality with respect to conventional breath-hold Cartesian volumetric interpolated breath-hold examination acquisitions. Conclusion: We presented a method that allows the simultaneous acquisition of respiratory motion-corrected diagnostic quality DCE-MRI and quantitatively accurate PET data in an integrated PET/MR scanner with negligible prolongation in acquisition time compared with routine PET/DCE-MRI protocols.
Insights
This study introduces a novel method for simultaneous PET/MR imaging, effectively correcting for respiratory motion without extending scan times. This technique enhances image quality and quantitative accuracy for oncologic patients.
Area of Science:
- Medical Imaging
- Radiology
- Biophysics
Background:
- Respiratory motion significantly degrades image quality and quantitative accuracy in simultaneous PET/MR imaging.
- Existing motion correction methods often increase acquisition time or require separate scans, limiting clinical applicability.
- Developing integrated, time-efficient motion compensation is crucial for improving diagnostic performance in oncologic imaging.
Purpose of the Study:
- To present a novel approach for concurrent reconstruction of respiratory motion-compensated abdominal dynamic contrast-enhanced (DCE)-MRI and PET data.
- To evaluate the impact of the proposed motion correction method on image quality and quantitative accuracy in oncologic patients.
- To assess the feasibility of implementing this technique within standard PET/MR acquisition protocols without increasing scan time.
Main Methods:
- Simultaneous acquisition of PET and DCE-MRI data in 12 oncologic patients using an integrated PET/MR scanner.
- Utilized golden-angle radial MR data for respiratory motion estimation and incorporated derived motion vector fields into both PET and MR reconstructions.
- Employed a compressed sensing reconstruction approach exploiting sparsity across respiratory phases for motion-corrected imaging (MC6-min, MC1-min, moco_GRASP).
Main Results:
- Motion-corrected MC6-min PET images showed significant improvements: 30% increase in SUVmax, 23% in SUVmean, 34% in contrast, 18% in SNR, and a 40% reduction in lesion volume.
- The MC1-min protocol also yielded substantial improvements (e.g., 19% SUVmax increase, 28% lesion volume reduction), demonstrating robustness with shorter data.
- Motion-corrected GRASP (moco_GRASP) DCE-MRI images achieved diagnostic quality comparable to or better than conventional breath-hold acquisitions.
Conclusions:
- The presented method enables simultaneous acquisition of respiratory motion-corrected DCE-MRI and quantitatively accurate PET data in integrated PET/MR scanners.
- This approach achieves diagnostic-quality imaging with negligible prolongation of acquisition time compared to routine protocols.
- The technique offers a promising solution for improved oncologic imaging with PET/MR, enhancing diagnostic confidence and quantitative precision.
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